• DocumentCode
    804284
  • Title

    Joint perturbation scattering characterization of a littoral ocean bottom reverberation: theory, scattering strength predictions, and data comparisons

  • Author

    Kuo, Edward Y T

  • Author_Institution
    Naval Undersea Warfare Center Detachment, New London, CT, USA
  • Volume
    20
  • Issue
    3
  • fYear
    1995
  • fDate
    7/1/1995 12:00:00 AM
  • Firstpage
    198
  • Lastpage
    210
  • Abstract
    A joint surface roughness/volumetric perturbation scattering theory is utilized to characterize the reverberation from a littoral ocean bottom. The result is a reflected field spectrum that consists of specular and off-specular components. The predicted scattering strength from the off-specular component is shown to be comprised of interface roughness scattering, sediment inhomogeneity volumetric scattering, and interface roughness/sediment inhomogeneity correlation scattering. The sediment inhomogeneity volumetric scattering is shown to contain two contributions that are due to fractional variations in sediment densities and sound velocities. Both contributions are shown to be affected by the interface effect by a round-trip transmission coefficient factor. These two fractional variations are shown to contribute differently to scattering strength but similarly to backscattering strength. Inversely predicted roughness spectra from various sets of backscattering strength data are shown to be consistent with a generally known roughness spectrum. Both inversely predicted roughness and volumetric scattering physical property spectra are found to be self-consistent. However, the use of only ocean bottom backscattering strength data is found to be insufficient to judge whether the roughness or the volumetric scattering dominates. Reverberation characterizations using bistatic scattering strength data and signal spread data are planned for future studies
  • Keywords
    acoustic signal processing; acoustic wave scattering; oceanographic techniques; perturbation techniques; seafloor phenomena; sediments; statistical analysis; underwater sound; backscattering strength; bistatic scattering strength data; data comparisons; fractional variations; interface roughness scattering; interface roughness/sediment inhomogeneity correlation scattering; inversely predicted roughness spectra; joint perturbation scattering; littoral ocean bottom reverberation; ocean bottom backscattering strength data; predicted scattering strength; reflected field spectrum; reverberation characterizations; round-trip transmission coefficient factor; scattering strength; sediment densities; sediment inhomogeneity volumetric scattering; sound velocities; specular components; volumetric scattering; volumetric scattering physical property spectra; Acoustic scattering; Acoustic waves; Backscatter; Chromium; Frequency; Oceans; Rayleigh scattering; Reverberation; Sediments; Underwater acoustics;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/48.393075
  • Filename
    393075